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Generative Models for Multi-Illumination Color Constancy

2021-09-02 · Partha Das, Yang Liu, Sezer Karaoglu, Theo Gevers

In this paper, the aim is multi-illumination color constancy. However, most of the existing color constancy methods are designed for single light sources. Furthermore, datasets for learning multiple illumination color constancy are largely missing. We propose a seed (physics driven) based multi-illumination color constancy method. GANs are exploited to model the illumination estimation problem as an image-to-image domain translation problem. Additionally, a novel multi-illumination data augmentation method is proposed. Experiments on single and multi-illumination datasets show that our methods outperform sota methods.

📄 PDF Abstract BibTeX arXiv:2109.00863

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Color ConstancyData AugmentationTranslation

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